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α-Melanocyte stimulating hormone promotes muscle glucose uptake via melanocortin 5 receptors.
Enriori, Pablo J; Chen, Weiyi; Garcia-Rudaz, Maria C; Grayson, Bernadette E; Evans, Anne E; Comstock, Sarah M; Gebhardt, Ursel; Müller, Hermann L; Reinehr, Thomas; Henry, Belinda A; Brown, Russell D; Bruce, Clinton R; Simonds, Stephanie E; Litwak, Sara A; McGee, Sean L; Luquet, Serge; Martinez, Sarah; Jastroch, Martin; Tschöp, Matthias H; Watt, Matthew J; Clarke, Iain J; Roth, Christian L; Grove, Kevin L; Cowley, Michael A.
Afiliación
  • Enriori PJ; Biomedical Discovery Institute/Department of Physiology, Monash University, Vic, Australia.
  • Chen W; Biomedical Discovery Institute/Department of Physiology, Monash University, Vic, Australia.
  • Garcia-Rudaz MC; Biomedical Discovery Institute/Department of Physiology, Monash University, Vic, Australia.
  • Grayson BE; Division Neuroscience, Oregon Health and Science University, Oregon, USA.
  • Evans AE; Division Neuroscience, Oregon Health and Science University, Oregon, USA.
  • Comstock SM; Division Neuroscience, Oregon Health and Science University, Oregon, USA.
  • Gebhardt U; Department of Pediatrics, Vestische Children Hospital Datteln, University of Witten/Herdecke, Germany.
  • Müller HL; Department of Pediatrics, Vestische Children Hospital Datteln, University of Witten/Herdecke, Germany.
  • Reinehr T; Department of Pediatrics, Klinikum Oldenburg GmbH, Germany.
  • Henry BA; Biomedical Discovery Institute/Department of Physiology, Monash University, Vic, Australia.
  • Brown RD; Biomedical Discovery Institute/Department of Physiology, Monash University, Vic, Australia.
  • Bruce CR; Biomedical Discovery Institute/Department of Physiology, Monash University, Vic, Australia.
  • Simonds SE; Biomedical Discovery Institute/Department of Physiology, Monash University, Vic, Australia.
  • Litwak SA; Biomedical Discovery Institute/Department of Physiology, Monash University, Vic, Australia.
  • McGee SL; Metabolic Research Unit, School of Medicine, Deakin University, Vic, Australia.
  • Luquet S; Univ Paris Diderot, Sorbonne Paris Cité, Unité de Biologie Fonctionnelle et Adaptative, CNRS UMR 8251, F-75205 Paris, France.
  • Martinez S; Univ Paris Diderot, Sorbonne Paris Cité, Unité de Biologie Fonctionnelle et Adaptative, CNRS UMR 8251, F-75205 Paris, France.
  • Jastroch M; Institute for Diabetes and Obesity, Helmholtz Zentrum München, German Research Center for Environmental Health, Neuherberg & Division of Metabolic Diseases, Technische Universität, München, Germany.
  • Tschöp MH; Institute for Diabetes and Obesity, Helmholtz Zentrum München, German Research Center for Environmental Health, Neuherberg & Division of Metabolic Diseases, Technische Universität, München, Germany.
  • Watt MJ; Biomedical Discovery Institute/Department of Physiology, Monash University, Vic, Australia.
  • Clarke IJ; Biomedical Discovery Institute/Department of Physiology, Monash University, Vic, Australia.
  • Roth CL; Division of Endocrinology, Seattle Children's Hospital Research Institute, WA, USA.
  • Grove KL; Division Neuroscience, Oregon Health and Science University, Oregon, USA.
  • Cowley MA; Biomedical Discovery Institute/Department of Physiology, Monash University, Vic, Australia. Electronic address: michael.cowley@monash.edu.
Mol Metab ; 5(10): 807-822, 2016 Oct.
Article en En | MEDLINE | ID: mdl-27688995
OBJECTIVE: Central melanocortin pathways are well-established regulators of energy balance. However, scant data exist about the role of systemic melanocortin peptides. We set out to determine if peripheral α-melanocyte stimulating hormone (α-MSH) plays a role in glucose homeostasis and tested the hypothesis that the pituitary is able to sense a physiological increase in circulating glucose and responds by secreting α-MSH. METHODS: We established glucose-stimulated α-MSH secretion using humans, non-human primates, and mouse models. Continuous α-MSH infusions were performed during glucose tolerance tests and hyperinsulinemic-euglycemic clamps to evaluate the systemic effect of α-MSH in glucose regulation. Complementary ex vivo and in vitro techniques were employed to delineate the direct action of α-MSH via the melanocortin 5 receptor (MC5R)-PKA axis in skeletal muscles. Combined treatment of non-selective/selective phosphodiesterase inhibitor and α-MSH was adopted to restore glucose tolerance in obese mice. RESULTS: Here we demonstrate that pituitary secretion of α-MSH is increased by glucose. Peripheral α-MSH increases temperature in skeletal muscles, acts directly on soleus and gastrocnemius muscles to significantly increase glucose uptake, and enhances whole-body glucose clearance via the activation of muscle MC5R and protein kinase A. These actions are absent in obese mice, accompanied by a blunting of α-MSH-induced cAMP levels in skeletal muscles of obese mice. Both selective and non-selective phosphodiesterase inhibition restores α-MSH induced skeletal muscle glucose uptake and improves glucose disposal in obese mice. CONCLUSION: These data describe a novel endocrine circuit that modulates glucose homeostasis by pituitary α-MSH, which increases muscle glucose uptake and thermogenesis through the activation of a MC5R-PKA-pathway, which is disrupted in obesity.
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Texto completo: 1 Banco de datos: MEDLINE Idioma: En Revista: Mol Metab Año: 2016 Tipo del documento: Article País de afiliación: Australia

Texto completo: 1 Banco de datos: MEDLINE Idioma: En Revista: Mol Metab Año: 2016 Tipo del documento: Article País de afiliación: Australia